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Annealing and temperature coefficient study of type IA fibre Bragg gratings inscribed under strain and no strain - Implications to optical fibre component reliability

机译:IA型光纤Bragg光栅在无应变情况下的退火和温度系数研究-对光纤组件可靠性的启示。

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摘要

The annealing properties of Type IA Bragg gratings are investigated and compared with Type I and Type IIA Bragg gratings. The transmission properties (mean and modulated wavelength components) of gratings held at predetermined temperatures are recorded from which decay characteristics are inferred. Our data show critical results concerning the high temperature stability of Type IA gratings, as they undergo a drastic initial decay at 100°C, with a consequent mean index change that is severely reduced at this temperature However, the modulated index change of IA gratings remains stable at lower annealing temperatures of 80°C, and the mean index change decays at a comparable rate to Type I gratings at 80°C. Extending this work to include the thermal decay of Type IA gratings inscribed under strain shows that the application of strain quite dramatically transforms the temperature characteristics of the Type IA grating, modifying the temperature coefficient and annealing curves, with the grating showing a remarkable improvement in high temperature stability, leading to a robust grating that can survive temperatures exceeding 180°C. Under conditions of inscription under strain it is found that the temperature coefficient increases, but is maintained at a value considerably different to the Type I grating. Therefore, the combination of Type I and IA (strained) gratings make it possible to decouple temperature and strain over larger temperature excursions.
机译:研究了IA型Bragg光栅的退火性能,并将其与I型和IIA型Bragg光栅进行了比较。记录保持在预定温度下的光栅的透射特性(均值和调制波长分量),从中推断出衰减特性。我们的数据显示了与IA型光栅的高温稳定性有关的关键结果,因为它们在100°C时经历了剧烈的初始衰减,因此在该温度下平均折射率的变化大大降低了。但是,IA光栅的调制后的折射率变化仍然存在在80°C的较低退火温度下稳定,并且平均折射率变化以与80°C的I型光栅相当的速率衰减。将这项工作扩展到包括在应变下刻画的IA型光栅的热衰变表明,应变的施加极大地改变了IA型光栅的温度特性,修改了温度系数和退火曲线,其中光栅在高温下显示出显着的改善。温度稳定,从而形成坚固耐用的光栅,可以承受超过180°C的温度。发现在应变下刻写的条件下,温度系数增加,但保持在与I型光栅明显不同的值。因此,I型和IA型(应变)光栅的组合使得在较大的温度偏移范围内使温度和应变解耦成为可能。

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